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Kirjailija

Greg F. Naterer

Kirjat ja teokset yhdessä paikassa: 8 kirjaa, julkaisuja vuosilta 2002–2026, suosituimpiin kuuluu Advanced Heat Transfer. Vertaile teosten hintoja ja tarkista saatavuus suomalaisista kirjakaupoista.

Nimi esiintyy myös muodoissa: Greg F Naterer

8 kirjaa

Kirjojen julkaisuvuodet: 2002–2026.

Advanced Heat Transfer

Advanced Heat Transfer

Greg F. Naterer

Taylor & Francis
2026
Sidottu
Advanced Heat Transfer, Fourth Edition provides a comprehensive source for analyzing heat transfer problems across a wide range of modes and applications in energy systems, including conduction, convection, radiation, phase change, and chemically reactive flows with heat transfer. The fourth edition introduces significant updates, including new content on historical perspectives of heat transfer, experimental methods, measurement uncertainties, and solidification processing of materials. It expands upon the coverage of advanced cooling techniques for electronics, waste heat recovery, and microchannel heat exchangers. New case studies explore topics such as optimization of electronic assemblies, directional solidification, heat recovery in industrial applications, and neural networks. This book is intended for senior undergraduate and graduate mechanical, aerospace, and chemical engineering students taking courses in Heat Transfer, Multiphase Heat Transfer, and Advanced Thermodynamics. A Solutions Manual, PowerPoint Lecture Slides, and Figure Slides are available for adopting instructors. The eBook+ version of this book features new interactive learning features, including multiple-choice and true/false quizzes, flashcards, and links to video and audio lectures.
Advanced Heat Transfer

Advanced Heat Transfer

Greg F. Naterer

Taylor Francis Ltd
2021
sidottu
The book provides a valuable source of technical content for the prediction and analysis of advanced heat transfer problems, including conduction, convection, radiation, phase change, and chemically reactive modes of heat transfer. With more than 20 new sections, case studies, and examples, the Third Edition broadens the scope of thermal engineering applications, including but not limited to biomedical, micro- and nanotechnology, and machine learning. The book features a chapter devoted to each mode of multiphase heat transfer. FEATURES Covers the analysis and design of advanced thermal engineering systems Presents solution methods that can be applied to complex systems such as semi-analytical, machine learning, and numerical methods Includes a chapter devoted to each mode of multiphase heat transfer, including boiling, condensation, solidification, and melting Explains processes and governing equations of multiphase flows with droplets and particles Applies entropy and the second law of thermodynamics for the design and optimization of thermal engineering systemsAdvanced Heat Transfer, Third Edition, offers a comprehensive source for single and multiphase systems of heat transfer for senior undergraduate and graduate students taking courses in advanced heat transfer, multiphase fluid mechanics, and advanced thermodynamics. A solutions manual is provided to adopting instructors.
Heat Transfer in Single and Multiphase Systems
Extensively revised and thoroughly updated, this popular text de-emphasizes high level mathematics in favor of effective, accurate modeling. Real-world examples amplify the theory and show how to use derived equations to model physical problems. Exercises that parallel the examples build readers' confidence and prepare them to confront the more complex situations they encounter as professionals.
Hydrogen Production from Nuclear Energy

Hydrogen Production from Nuclear Energy

Greg F Naterer; Ibrahim Dincer; Calin Zamfirescu

Springer London Ltd
2015
nidottu
With the resurgence of nuclear power around the world, and the increasingly important role of hydrogen as a clean energy carrier, the utilization of nuclear energy for large-scale hydrogen production will have a key role in a sustainable energy future. Co-generation of both electricity and hydrogen from nuclear plants will become increasingly attractive. It enables load leveling together with renewable energy and storage of electricity in the form of hydrogen, when electricity prices and demand are lowest at off-peak hours of nuclear plants, such as overnight. Hydrogen Production from Nuclear Energy provides an overview of the latest developments and methods of nuclear based hydrogen production, including electrolysis and thermochemical cycles. Particular focus is given to thermochemical water splitting by the copper-chlorine and sulphur-based cycles. Cycle configurations, equipment design, modeling and implementation issues are presented and discussed. The book provides the reader with an overview of the key enabling technologies towards the design and industrialization of hydrogen plants that are co-located and linked with nuclear plants in the future. The book includes illustrations of technology developments, tables that summarize key features and results, overviews of recent advances and new methods of nuclear hydrogen production. The latest results from leading authorities in the fields will be presented, including efficiencies, costs, equipment design, and modeling.
Hydrogen Production from Nuclear Energy

Hydrogen Production from Nuclear Energy

Greg F Naterer; Ibrahim Dincer; Calin Zamfirescu

Springer London Ltd
2013
sidottu
With the resurgence of nuclear power around the world, and the increasingly important role of hydrogen as a clean energy carrier, the utilization of nuclear energy for large-scale hydrogen production will have a key role in a sustainable energy future. Co-generation of both electricity and hydrogen from nuclear plants will become increasingly attractive. It enables load leveling together with renewable energy and storage of electricity in the form of hydrogen, when electricity prices and demand are lowest at off-peak hours of nuclear plants, such as overnight. Hydrogen Production from Nuclear Energy provides an overview of the latest developments and methods of nuclear based hydrogen production, including electrolysis and thermochemical cycles. Particular focus is given to thermochemical water splitting by the copper-chlorine and sulphur-based cycles. Cycle configurations, equipment design, modeling and implementation issues are presented and discussed. The book provides the reader with an overview of the key enabling technologies towards the design and industrialization of hydrogen plants that are co-located and linked with nuclear plants in the future. The book includes illustrations of technology developments, tables that summarize key features and results, overviews of recent advances and new methods of nuclear hydrogen production. The latest results from leading authorities in the fields will be presented, including efficiencies, costs, equipment design, and modeling.
Entropy Based Design and Analysis of Fluids Engineering Systems

Entropy Based Design and Analysis of Fluids Engineering Systems

Greg F. Naterer; Jose A. Camberos

CRC Press Inc
2008
sidottu
From engineering fluid mechanics to power systems, information coding theory and other fields, entropy is key to maximizing performance in engineering systems. It serves a vital role in achieving the upper limits of efficiency of industrial processes and quality of manufactured products. Entropy based design (EBD) can shed new light on various flow processes, ranging from optimized flow configurations in an aircraft engine to highly ordered crystal structures in a turbine blade. Entropy Based Design of Fluid Engineering Systems provides an overview of EBD as an emerging technology with applications to aerospace, microfluidics, heat transfer, and other disciplines. The text extends past analytical methods of Entropy Generation Minimization to numerical simulations involving more complex configurations and experimental measurement techniques. The book begins with an extensive development of basic concepts, including the mathematical properties of entropy and exergy, as well as statistical and numerical formulations of the second law. It then goes on to describe topics related to incompressible flows and the Second Law in microfluidic systems. The authors develop computational and experimental methods for identifying problem regions within a system through the local rates of entropy production. With these techniques, designers can use EBD to focus on particular regions where design modifications can be made to improve system performance. Numerous case studies illustrate the concepts in each chapter, and cover an array of applications including supersonic flows, condensation and turbulence. A one-of-a-kind reference, Entropy Based Design of Fluid Engineering Systems outlines new advances showing how local irreversibilities can be detected in complex configurations so that engineering devices can be re-designed locally to improve overall performance.
Heat Transfer in Single and Multiphase Systems
Extensively revised and thoroughly updated, this popular text de-emphasizes high level mathematics in favor of effective, accurate modeling. Real-world examples amplify the theory and show how to use derived equations to model physical problems. Exercises that parallel the examples build readers' confidence and prepare them to confront the more complex situations they encounter as professionals.